Parking brake actuator
09909635 ยท 2018-03-06
Assignee
Inventors
Cpc classification
F16D2125/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An embodiment of the present invention relates to a parking brake actuator which includes a motor; a worm gear connected to the motor to transmit a power; a worm wheel engaged with the worm gear; a drive shaft coupled to the worm wheel, wherein a parking cable is connected to the drive shaft; a power transmission gear including a first gear coupled to a rotational shaft of the motor and a second gear which is coupled to a rotational shaft of the worm gear and connected to the first gear to transmit the power; and a housing including a first accommodation portion disposed at one side of a reference line which is formed perpendicular to the rotational shaft of the motor and passes through the first gear to accommodate the motor, a second accommodation portion disposed at another side of the reference line to accommodate the worm gear so that the rotational shaft of the worm gear is parallel to the rotational shaft of the motor, and a third accommodation portion disposed at the other side of the reference line to accommodate the worm wheel, thus providing an advantageous effect in which motors of various sizes may be applied without machining a separate housing to correspond to each of the sizes of motor or changing sizes or the number of teeth of gears.
Claims
1. A parking brake actuator comprising: a motor; a worm gear connected to the motor to transmit a power; a worm wheel engaged with the worm gear; a drive shaft coupled to the worm wheel, wherein a parking cable is connected to the drive shaft; a power transmission gear including a first gear coupled to a rotational shaft of the motor and a second gear which is coupled to a rotational shaft of the worm gear and connected to the first gear to transmit the power; a housing including a first accommodation portion disposed at one side of a reference line which is formed perpendicular to the rotational shaft of the motor and passes through the first gear to accommodate the motor, a second accommodation portion disposed at the other side of the reference line to accommodate the worm gear so that the rotational shaft of the worm gear is parallel to the rotational shaft of the motor, and a third accommodation portion disposed at the other side of the reference line to accommodate the worm wheel; a controller accommodated in the third accommodation portion; and a connection terminal coupled to the controller and connected to a power source terminal pin of the motor, wherein the controller includes an extension portion extending toward the first accommodation portion, and the connection terminal is coupled to the extension portion.
2. The parking brake actuator of claim 1, wherein the rotational shaft of the worm gear is disposed to be spaced apart from and parallel to the rotational shaft of the motor.
3. The parking brake actuator of claim 2, wherein the drive shaft is accommodated in the third accommodation portion.
4. The parking brake actuator of claim 3, wherein the third accommodation portion is disposed at a side opposite the first accommodation portion on the basis of the reference line.
5. The parking brake actuator of claim 4, wherein the first gear and the second gear are disposed to be engaged with each other on the reference line.
6. The parking brake actuator of claim 1, wherein the connection terminal includes a body, a coupling portion, and an insertion portion, wherein the body includes an electrode which electrically connects the power source terminal pin and the controller, and wherein the coupling portion protrudes from a lower end of the body as a pair of pin shapes.
7. The parking brake actuator of claim 6, further comprising coupling holes in the extension portion into which the connection terminals are respectively inserted.
8. The parking brake actuator of claim 7, wherein the power source terminal pin is formed to be bent downward perpendicular to a direction of the rotational shaft of the motor, and the connection terminal is perpendicularly coupled to the extension portion, and wherein the insertion portion includes a plurality of insertion guiding pieces formed in a cantilever shape bent at an upper end of the body and are elastically transformable.
9. The parking brake actuator of claim 8, wherein an end of the coupling portion is formed to sharply taper to be inserted into the coupling hole of the controller.
10. The parking brake actuator of claim 9, wherein the coupling portion includes a stepped surface hooked to a rear surface of the controller.
11. The parking brake actuator of claim 10, wherein the coupling portion includes a slot which is formed by being cut and implements an elastic transform space.
12. The parking brake actuator of claim 8, wherein the parking cable is directly connected to the drive shaft.
13. The parking brake actuator of claim 8, wherein the worm wheel has a central shaft, and wherein the drive shaft is coupled within the central shaft.
14. The parking brake actuator of claim 1, wherein the motor has a housing, and wherein the motor housing is within the first accommodation portion.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
REFERENCE NUMERALS
(9) 100: MOTOR
(10) 110: STATOR
(11) 120: ROTOR
(12) 130: ROTATIONAL SHAFT
(13) 140: HOUSING
(14) 150: BEARING
(15) 200: WORM GEAR
(16) 300: WORM WHEEL
(17) 400: DRIVE SHAFT
(18) 500: POWER TRANSMISSION GEAR
(19) 510: FIRST GEAR
(20) 520: SECOND GEAR
(21) 600: HOUSING
(22) 610: FIRST ACCOMMODATION PORTION
(23) 620: SECOND ACCOMMODATION PORTION
(24) 630: THIRD ACCOMMODATION PORTION
(25) 700: CONNECTION TERMINAL
(26) 800: CONTROLLER
MODES OF THE INVENTION
(27) Purposes, specific advantages, and novel features of the invention will be made clear from exemplary embodiments and the following detailed description in connection with the accompanying drawings. Terms and words used in this specification and claims are not to be interpreted as limited to commonly used meanings or meanings in dictionaries and should be interpreted with meanings and concepts which are consistent with the technological scope of the invention based on the principle that the inventors have appropriately defined concepts of terms in order to describe the invention in the best way. In the description of the invention, when it is determined that detailed descriptions of related well-known functions unnecessarily obscure the gist of the invention, detailed descriptions thereof will be omitted.
(28) It should be understood that, although the terms first, second, etc. may be used herein to describe various elements, these elements are not limited by these terms. These terms are only used to distinguish one element from another. For example, a second element could be termed a first element, and, similarly, a first element could be termed a second element, without departing from the scope of the present invention. As used herein, the term and/or includes any and all combinations of one or more of the associated listed items.
(29)
(30) Referring to
(31) The worm gear 200, the worm wheel 300, and the power transmission gear 500 serve to transmit a rotational force of the motor 100 to the drive shaft 400. A parking cable may be connected to the drive shaft 400.
(32)
(33) Referring to
(34) The stator 110 may be fixed inside a housing 140. The rotor 120 may be disposed inside the stator 110, and the rotational shaft 130 may be coupled to a central portion of the rotor 120. A coil which forms a magnetic field may be wound around the stator 110, and a magnet may be included in the rotor 120. The rotor 120 is rotated due to an interaction of the coil and the magnet, and when the rotor rotates, the rotational shaft 130 is rotated and a driving force which pulls or pushes the parking cable is generated.
(35) The rotational shaft 130 may be rotatably supported by a bearing 150.
(36) The stator 110 is provided with one core or by coupling a plurality of separated cores.
(37)
(38) Referring to
(39) The motor 100 and the worm gear 200 are connected through the power transmission gear 500.
(40) The power transmission gear 500 may include a first gear 510 and a second gear 520.
(41) The first gear 510 may be connected to the rotational shaft of the motor 100. In addition, the second gear 520 may be coupled to the rotational shaft of the worm wheel 300. The first gear 510 and the second gear 520 are disposed to be engaged with each other. Since the number of teeth of the second gear 520 is greater than that of the first gear 510, a rotational speed of the motor 100 is reduced and transmitted to the worm wheel 300.
(42) When the motor 100 rotates, the first gear 510 is rotated. When the first gear 510 is rotated, the second gear 520 and the worm gear 200 are rotated. When the worm wheel 300 is rotated about the rotational shaft C3 as the worm gear 200 is rotated, the drive shaft 400 is rotated and pulls the parking cable, and thus a braking force is provided to the parking brake.
(43) At this point, a high output of the motor 100 is required to increase the braking force of the parking brake. A motor having a high output has a relatively large size. Accordingly, a bigger accommodation space accommodating the motor 100 is required in the housing 600. However, when the worm gear 200 is accommodated next to the motor 100 in parallel similar to an area shown as 1 in
(44) That is, in a state in which a ratio and sizes of the first gear 510 and the second gear 520 are decided, when a size of the motor 100 is changed, there is an inconvenience in that the ratio and the sizes of the first gear 510 and the second gear 520 have to be changed. Alternatively, an inside surface of the housing 600 has to be cut to obtain a size corresponding to an expanded space, and accordingly there are problems in that a process is complicated and a strength of the housing 600 is lowered.
(45) The housing 600 of the parking brake actuator according to the exemplary embodiment of the present invention is provided to solve such problems, and there is characterized in that a design tolerance is obtained by obtaining a space just beside the motor 100 when a size of the motor 100 is increased.
(46)
(47) Referring to
(48) Referring to
(49) The motor 100 is seated in the first accommodation portion 610. The worm gear 200 is seated in the second accommodation portion 620. The rotational shaft of the motor 100 and the rotational shaft of the worm gear 200 are disposed in parallel to each other.
(50) The second accommodation portion 620 is positioned at a side opposite the first accommodation portion 610 on the basis of the reference line CL. Accordingly, an expansion space similar to a space 1 shown in
(51) When an expansion space similar to the space 1 shown in
(52) The third accommodation portion 630 is also positioned at the side opposite the first accommodation portion 610 on the basis of the reference line CL. For example, the third accommodation portion 630 may be positioned at a side facing the first accommodation portion 610 on the basis of the reference line CL. Such a third accommodation portion 630 accommodates the worm wheel 300 and the drive shaft 400. In addition, a controller 800 may be installed in the third accommodation portion 630. The controller 800 may be a board on which control elements that control driving of the motor 100, sensor elements that detect a position of the worm wheel 300, or the like are mounted.
(53) The worm gear 200 is installed in the second accommodation portion 620 to be rotatable about the reference line CL. In addition, the worm wheel 300 is installed in the third accommodation portion 630 to be rotatable about the rotational shaft C3. The first gear 510 and the second gear 520 are disposed to be engaged with each other on the reference line CL.
(54)
(55) Referring to
(56) The parking brake actuator according to the exemplary embodiment of the present invention is characterized in that the power source terminal pins 160 of the motor 100 and the controller 800 are connected to each other through the connection terminals 700 to solve the above-described problems.
(57) An extension portion 820 formed to extend toward the first accommodation portion 610 in
(58) Referring to
(59) The connection terminal 700 may include a body 710, a coupling portion 720, and an insertion portion 730. The body 710 may be formed to an appropriate length that compensates for a separation distance between the power source terminal pin 160 and the controller 800. In addition, an electrode which electrically connects the power source terminal pin 160 and the controller 800 is included inside the body 710.
(60) The coupling portion 720 may be formed to protrude from a lower end of the body 710. As illustrated in
(61) In addition, the coupling portion 720 may include a slot 722 forming a separation space. The slot 722 induces an elastic transformation of the coupling portion 720 while the connection terminal 700 is mounted on the controller 800 and guides the end of the coupling portion 720 to be easily inserted into the controller 800.
(62) The insertion portion 730 is a portion which is formed at an upper portion of the body 710 and into which the power source terminal pin 160 is inserted. A plurality of insertion guiding pieces 731 formed to be bent downward for guiding a smooth insertion of the power source terminal pin 160 may be provided in the insertion portion 730. The insertion guiding pieces 731 are formed in a cantilever beam-like shape bent at an upper end of the body 710, and provided to be elastically transformable.
(63) When the motor 100 is connected to the controller 800, since an operation proceeds in a form in which the connection terminal 700 is assembled to the controller 800 and the power source terminal pin 160 is inserted into the connection terminal 700, a process through which a separate pressing pin for coupling is injection molded on the controller 800 may be omitted, the process may be simplified, and cost may be decreased. In addition, the management of the sizes of the pressing pin is not needed.
(64) The parking brake actuator according to the exemplary embodiment of the present invention has been specifically described with reference to the accompanying drawings.
(65) The above-described one embodiment should be considered in a descriptive sense only and not for purposes of limitation. The scope of the present invention is defined not by the detailed description but by the appended claims, and encompasses all modifications and alterations derived from meanings, the scope, and the equivalents of the appended claims.